Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Can this cypher query faster. For 2 lac records it takes about 30sec.

start pn=node   (10580)  
match pn--n-[rel:PAYS]-(companies)   with n,rel, companies  
match n,companies-[:BELONGS_TO]->()-->(parentInd)  
where id(parentInd) in   [10587,10657,13009,11957,10571,20980,10554,11541,11649,15339,10604,10959,10575,15302,10584,10564,10773,10597,10930,11336,10578,10674,11622,10592,14754,10611,10652,15326,11213,11429,18180,14432,12249,10785,11810,10763,12333,10944,12988,12783,12258,11778,20503,10927,16216,10552,10635,13887,12814,19424,11943,10671,10627,11202,16363,10712,12048,11128,11036,15973,10660,13083,13778,13405,13985,18313,13760,10956,11003,11472,11197,14376,10695,10644,11965,12097,13196,10719]  
with n, rel, companies  
match companies-[:LOCATED_IN]->()-->(region)  
where id(region) in    [1,2,3,4,5,6,7]  
with n, rel, companies  
match companies-[:SUB_OF]->()-->(gcbP)  
where id(gcbP) in    [13,8,11,9,10,12]  
and rel.source in ['Bloomberg','Wire','Trade BIR']  
and rel.transactionAmount > 1 and rel.transactionAmount < 9792562211034  
and rel.transactionDate > 946702800000 and rel.transactionDate < 1372651200000  
return        rel.source as DESCRIPTION, sum(rel.transactionAmount) as TRANSACTION_AMOUNT, count(*) as TRANSACTION_COUNT, "EXTERNAL" as TRANSACTION_TYPE,    n.companyParentName as D_ULTIMATE_PARENT_NAME, n.companyParentCity as d_ultimate_parent_city, n.companyParentState as d_ultimate_parent_state, n.companyParentCountry as d_ultimate_parent_country,    n.companyName as D_CUSTOMER_NAME, n.companyCity as d_customer_city, n.companyState as d_customer_state, n.companyCountry as d_customer_country,    companies.companyParentName as C_ULTIMATE_PARENT_NAME, companies.companyParentCity as c_ultimate_parent_city, companies.companyParentState as c_ultimate_parent_state, companies.companyParentCountry as c_ultimate_parent_country,    companies.companyName as C_CUSTOMER_NAME, companies.companyCity as c_customer_city, companies.companyState as c_customer_state, companies.companyCountry as c_customer_country,    n.companyIndustry as D_CUST_INDUSTRY_LEVEL_1, companies.companyIndustry as C_CUST_INDUSTRY_LEVEL_1, n.companyParentGCB as D_UP_GCP_PRIORITY, companies.companyParentGCB as C_UP_GCP_PRIORITY    ;**  
share|improve this question
    
How many rows are returned by start pn=node (10580) match pn--n-[rel:PAYS]-(companies) and how many rows returned by companies-[:BELONGS_TO]->()-->(parentInd) where id(parentInd) in [10....]. Also move the list of ids into the start clause? –  Luanne Sep 12 '13 at 10:28
    
Also move the list of ids into the start clause. means where to fit in the query ? any suggestion ? –  Abhi Sep 12 '13 at 10:35
    
Those are node id's right? So something like start pn=node(10580, parentInd=node(10587,10657 etc). Then you dont need the id(parentId) IN match –  Luanne Sep 12 '13 at 10:41
    
i tried with the new syntax but performancewise it's not helping. –  Abhi Sep 12 '13 at 11:58
    
How many rows are returned by start pn=node (10580) match pn--n-[rel:PAYS]-(companies) and how many rows returned by companies-[:BELONGS_TO]->()-->(parentInd) where id(parentInd) in [10....]. –  Luanne Sep 12 '13 at 12:57

1 Answer 1

Does this improve it? Please send the details in the comments above.

start pn=node   (10580), parentInd=node(10587,10657,13009,11957,10571,20980,10554,11541,11649,15339,10604,10959,10575,15302,10584,10564,10773,10597,10930,11336,10578,10674,11622,10592,14754,10611,10652,15326,11213,11429,18180,14432,12249,10785,11810,10763,12333,10944,12988,12783,12258,11778,20503,10927,16216,10552,10635,13887,12814,19424,11943,10671,10627,11202,16363,10712,12048,11128,11036,15973,10660,13083,13778,13405,13985,18313,13760,10956,11003,11472,11197,14376,10695,10644,11965,12097,13196,10719),
region=node(1,2,3,4,5,6,7), gcbP=node(13,8,11,9,10,12)
match companies-[:BELONGS_TO]->()-->(parentInd) 
with companies,pn
match pn--n-[rel:PAYS]-(companies)   with n,rel, companies  
match companies-[:LOCATED_IN]->()-->(region)  
with n, rel, companies  
match companies-[:SUB_OF]->()-->(gcbP)  
where 
rel.source in ['Bloomberg','Wire','Trade BIR']  
and rel.transactionAmount > 1 and rel.transactionAmount < 9792562211034  
and rel.transactionDate > 946702800000 and rel.transactionDate < 1372651200000  
return        rel.source as DESCRIPTION, sum(rel.transactionAmount) as TRANSACTION_AMOUNT, count(*) as TRANSACTION_COUNT, "EXTERNAL" as TRANSACTION_TYPE,    n.companyParentName as D_ULTIMATE_PARENT_NAME, n.companyParentCity as d_ultimate_parent_city, n.companyParentState as d_ultimate_parent_state, n.companyParentCountry as d_ultimate_parent_country,    n.companyName as D_CUSTOMER_NAME, n.companyCity as d_customer_city, n.companyState as d_customer_state, n.companyCountry as d_customer_country,    companies.companyParentName as C_ULTIMATE_PARENT_NAME, companies.companyParentCity as c_ultimate_parent_city, companies.companyParentState as c_ultimate_parent_state, companies.companyParentCountry as c_ultimate_parent_country,    companies.companyName as C_CUSTOMER_NAME, companies.companyCity as c_customer_city, companies.companyState as c_customer_state, companies.companyCountry as c_customer_country,    n.companyIndustry as D_CUST_INDUSTRY_LEVEL_1, companies.companyIndustry as C_CUST_INDUSTRY_LEVEL_1, n.companyParentGCB as D_UP_GCP_PRIORITY, companies.companyParentGCB as C_UP_GCP_PRIORITY    ;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.